Title :
High-Flux Density and Low-Core Losses Attained for Ferrite/Permalloy Composite Core
Author :
Matsushita, Nobuhiro ; Kim, Duksil ; Abe, Masanori
Author_Institution :
Japan Mater. & Structures Lab., Tokyo Inst. of Technol., Yokohama
Abstract :
Permalloy (Ni47Fe53) microspheres, 8 mum in average diameter, were encapsulated in Ni-Zn ferrite layer by ultrasound enhanced ferrite plating from an aqueous solution at 80degC at pH = 6-9. The ferrite-plated, as well as nonplated (bare) microspheres for comparison were compacted at 5 ton/cm2to toroidal cores, on which complex permeability (mu=mu\´-jmu") and core loss Pcvwere measured. When plated at pH= 9 the composite core exhibited the strongest saturation magnetization, which was about three times stronger than that of conventional bulk ferrite cores. By the ferrite-encapsulation, the core losses decreased by a factor of 10 at 2-5 MHz, because eddy-current loss was suppressed by the insulating Ni-Zn ferrite layer. As compared to the conventional powder cores in which fine particles of Ni50Fe50 or Fe are dispersed in epoxy resins, our composite core (plated at pH = 9) exhibited two or ten times low value of Pcv at 1 MHz, respectively. The value of Pcv in the composite core did not change when temperature was raised from 25 to 100degC, exhibiting thermal stability enough for actual use
Keywords :
composite materials; eddy current losses; ferrites; magnetic cores; magnetic flux; magnetic permeability; magnetisation; nickel alloys; thermal stability; zinc alloys; 25 to 100 C; 8 micron; 80 C; Ni-Zn ferrite layer; NiFe; complex permeability; core losses; eddy current loss; encapsulation; epoxy resins; ferrite/permalloy composite core; high flux density; permalloy microspheres; saturation magnetization; thermal stability; toroidal cores; ultrasound enhanced ferrite plating; Core loss; Ferrites; Insulation; Iron; Loss measurement; Magnetic cores; Permeability measurement; Powders; Saturation magnetization; Ultrasonic imaging; Composite core; core losses; eddy-current loss; ferrite plating; power electronics;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2006.879740